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Occurrence of 40 sanitary indicators in French digestates derived from different anaerobic digestion processes and raw organic wastes from agricultural and urban origin. | LitMetric

AI Article Synopsis

  • This study examined the sanitary quality of digestates from anaerobic digestion of urban and agricultural organic wastes by evaluating 40 sanitary indicators related to pathogens and antimicrobial resistance.
  • Three lab-scale reactors were tested with different feed mixtures, showing that adding materials like wheat straw and zeolite improved hygienization efficiency compared to a reactor with only fecal matter.
  • Key findings revealed significant reductions in pathogenic bacteria and harmful micropollutants in the more effective reactor setups, highlighting the potential for enhanced waste treatment processes.

Article Abstract

This study investigated the sanitary quality of digestates resulting from the mesophilic anaerobic digestion (AD) of urban and agricultural organic wastes (OWs). 40 sanitary indicators, including pathogenic bacteria, antimicrobial resistance genes, virulence factor genes, and mobile genetic elements were evaluated using real-time PCR and/or droplet digital PCR. 13 polycyclic aromatic hydrocarbons (PAHs) and 13 pharmaceutical products (PHPs) were also measured. We assessed agricultural OWs from three treatment plants to study the effect of different AD processes (feeding mode, number of stages, pH), and used three laboratory-scale reactors to study the effect of different feed-supplies (inputs). The lab-scale reactors included: Lab1 fed with 97% activated sludge (urban waste) and 3% cow manure; Lab2 fed with 85% sludge-manure mixture supplemented with 15% wheat straw (WS); and Lab3 fed with 81% sludge-manure mixture, 15% WS, and 4% zeolite powder. Activated sludge favored the survival of the food-borne pathogens and , carrying the toxin-encoding genes and Globally, the reactors fed with fecal matter supplemented with straw (Lab2) or with straw and zeolite (Lab3) had a higher hygienization efficiency than the reactor fed uniquely with fecal matter (Lab1). Three pathogenic bacteria (, , and complex), a beta-lactam resistance gene ( ), and three mobile genetic elements (, , and IS) were significantly decreased in Lab2 and Lab3. Moreover, the concentrations of 11 PAHs and 11 PHPs were significantly lower in Lab2 and Lab3 samples than in Lab1 samples. The high concentrations of micropollutants, such as triclosan, found in Lab1, could explain the lower hygienization efficiency of this reactor. Furthermore, the batch-fed reactor had a more efficient hygienization effect than the semi-continuous reactors, with complete removal of the gene, which is involved in the production of the siderophore yersiniabactin, and significant reduction of and . These data suggest that it is essential to control the level of chemical pollutants in raw OWs to optimize the sanitary quality of digestates, and that adding co-substrate, such as WS, may overcome the harmful effect of pollutants.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11333366PMC
http://dx.doi.org/10.3389/fmicb.2024.1346715DOI Listing

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